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Quantitative Phosphoproteomics Unravels Biased Phosphorylation of Serotonin 2A Receptor at Ser280 by Hallucinogenic versus Nonhallucinogenic Agonists

Samah Karaki, Carine Bécamel, Samy Murat, Clotilde Mannoury la Cour, Mark J. Millan, Laurent Prézeau, Joël Bockaert, Philippe Marin, Franck Vandermoere

Molecular & Cellular Proteomics March 18, 2014 DOI: 10.1074/mcp.m113.036558 via OpenAlex

Summary

AI-generated from the abstract

The serotonin 5-HT(2A) receptor is a primary target of psychedelic hallucinogens like LSD, mescaline, and psilocybin, which mimic some schizophrenia symptoms. A paradox is that some 5-HT(2A) receptor agonists cause hallucinations while structurally similar ones do not. Comparing the phosphoproteome in HEK-293 cells expressing the 5-HT(2A) receptor, 16 phosphorylation sites differed between the hallucinogen DOI and the nonhallucinogenic agonist lisuride. One site, serine 280 in the receptor's third intracellular loop, was specifically phosphorylated by hallucinogens. In mice, DOI enhanced this phosphorylation in the prefrontal cortex, while lisuride did not. Hallucinogens caused less receptor desensitization than nonhallucinogenic agonists. Mutating serine 280 altered desensitization, revealing biased phosphorylation underlies different desensitization capacities.

Study at a glance

Characteristics Experimental study Peer reviewed
Population HEK-293 cells and mice
Interventions DOI lisuride
Topics LSD Mescaline Psilocybin Serotonin
Keywords Lisuride Hallucinogen Agonist
Citations 73
Key finding Hallucinogenic and nonhallucinogenic 5-HT(2A) receptor agonists induce distinct phosphorylation patterns at serine 280, leading to different degrees of receptor desensitization.

Abstract

The serotonin 5-HT(2A) receptor is a primary target of psychedelic hallucinogens such as lysergic acid diethylamine, mescaline, and psilocybin, which reproduce some of the core symptoms of schizophrenia. An incompletely resolved paradox is that only some 5-HT(2A) receptor agonists exhibit hallucinogenic activity, whereas structurally related agonists with comparable affinity and activity lack such a psychoactive activity. Using a strategy combining stable isotope labeling by amino acids in cell culture with enrichment in phosphorylated peptides by means of hydrophilic interaction liquid chromatography followed by immobilized metal affinity chromatography, we compared the phosphoproteome in HEK-293 cells transiently expressing the 5-HT(2A) receptor and exposed to either vehicle or the synthetic hallucinogen 1-[2,5-dimethoxy-4-iodophenyl]-2-aminopropane (DOI) or the nonhallucinogenic 5-HT(2A) agonist lisuride. Among the 5995 identified phosphorylated peptides, 16 sites were differentially phosphorylated upon exposure of cells to DOI versus lisuride. These include a serine (Ser(280)) located in the third intracellular loop of the 5-HT(2A) receptor, a region important for its desensitization. The specific phosphorylation of Ser(280) by hallucinogens was further validated by quantitative mass spectrometry analysis of immunopurified receptor digests and by Western blotting using a phosphosite specific antibody. The administration of DOI, but not of lisuride, to mice, enhanced the phosphorylation of 5-HT(2A) receptors at Ser(280) in the prefrontal cortex. Moreover, hallucinogens induced a less pronounced desensitization of receptor-operated signaling in HEK-293 cells and neurons than did nonhallucinogenic agonists. The mutation of Ser(280) to aspartic acid (to mimic phosphorylation) reduced receptor desensitization by nonhallucinogenic agonists, whereas its mutation to alanine increased the ability of hallucinogens to desensitize the receptor. This study reveals a biased phosphorylation of the 5-HT(2A) receptor in response to hallucinogenic versus nonhallucinogenic agonists, which underlies their distinct capacity to desensitize the receptor.

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